US20020153011A1 - Neo-natal oxygen delivery system - Google Patents
Neo-natal oxygen delivery system Download PDFInfo
- Publication number
- US20020153011A1 US20020153011A1 US10/137,259 US13725902A US2002153011A1 US 20020153011 A1 US20020153011 A1 US 20020153011A1 US 13725902 A US13725902 A US 13725902A US 2002153011 A1 US2002153011 A1 US 2002153011A1
- Authority
- US
- United States
- Prior art keywords
- conduit
- flow rate
- aperture
- fluid
- flow
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
- QVGXLLKOCUKJST-UHFFFAOYSA-N atomic oxygen Chemical compound [O] QVGXLLKOCUKJST-UHFFFAOYSA-N 0.000 title claims abstract description 110
- 239000001301 oxygen Substances 0.000 title claims abstract description 106
- 229910052760 oxygen Inorganic materials 0.000 title claims abstract description 106
- 239000007787 solid Substances 0.000 claims abstract description 20
- 230000000740 bleeding effect Effects 0.000 claims abstract description 10
- 230000000903 blocking effect Effects 0.000 claims abstract description 6
- 239000012530 fluid Substances 0.000 claims description 61
- 238000004891 communication Methods 0.000 claims description 24
- 238000000034 method Methods 0.000 claims description 6
- 239000007789 gas Substances 0.000 claims description 4
- 238000011144 upstream manufacturing Methods 0.000 description 5
- MYMOFIZGZYHOMD-UHFFFAOYSA-N Dioxygen Chemical compound O=O MYMOFIZGZYHOMD-UHFFFAOYSA-N 0.000 description 4
- 229910001882 dioxygen Inorganic materials 0.000 description 4
- 239000007788 liquid Substances 0.000 description 4
- 239000000203 mixture Substances 0.000 description 4
- 238000013021 overheating Methods 0.000 description 4
- 241001631457 Cannula Species 0.000 description 2
- 239000000463 material Substances 0.000 description 2
- 230000003014 reinforcing effect Effects 0.000 description 2
- 238000010792 warming Methods 0.000 description 2
- 239000004698 Polyethylene Substances 0.000 description 1
- 230000004075 alteration Effects 0.000 description 1
- 238000000071 blow moulding Methods 0.000 description 1
- 230000036760 body temperature Effects 0.000 description 1
- 238000010276 construction Methods 0.000 description 1
- 238000012888 cubic function Methods 0.000 description 1
- 230000018044 dehydration Effects 0.000 description 1
- 238000006297 dehydration reaction Methods 0.000 description 1
- 238000013461 design Methods 0.000 description 1
- 239000003814 drug Substances 0.000 description 1
- 238000001125 extrusion Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 239000004033 plastic Substances 0.000 description 1
- 229920003023 plastic Polymers 0.000 description 1
- -1 polyethylene Polymers 0.000 description 1
- 229920000573 polyethylene Polymers 0.000 description 1
- 210000002345 respiratory system Anatomy 0.000 description 1
- 238000011272 standard treatment Methods 0.000 description 1
- 230000001225 therapeutic effect Effects 0.000 description 1
- 238000003856 thermoforming Methods 0.000 description 1
Images
Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/20—Valves specially adapted to medical respiratory devices
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/08—Bellows; Connecting tubes ; Water traps; Patient circuits
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/10—Preparation of respiratory gases or vapours
- A61M16/1075—Preparation of respiratory gases or vapours by influencing the temperature
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M16/00—Devices for influencing the respiratory system of patients by gas treatment, e.g. ventilators; Tracheal tubes
- A61M16/10—Preparation of respiratory gases or vapours
- A61M16/14—Preparation of respiratory gases or vapours by mixing different fluids, one of them being in a liquid phase
- A61M16/16—Devices to humidify the respiration air
Definitions
- This invention relates generally to devices for supplying fluids to patients and more particularly to devices for supplying warm, humidified oxygen gas to patients.
- Oxygen is commonly delivered in the practice of medicine to patients as a gas.
- the oxygen flows from a source to a delivery device such as a nasal cannula, for delivery to the patient's respiratory tract.
- oxygen gas delivered directly from a hospital oxygen delivery system is dry and cold. Delivering dry and cold oxygen to an infant, for example, can undesirably lower body temperature and promote dehydration. Accordingly, it is often preferred to warm and humidify the oxygen so that the patient inhales a warm gas-liquid mixture.
- fluid such as warm, humidified oxygen
- An additional object of the invention is to provide a system of the character described that is compatible with existing equipment, such as oxygen humidifiers.
- a further object of the invention is to provide a system of the character described that is suitable for use with pediatric patients.
- a further object of the invention is to provide a system of the character described that is uncomplicated in configuration and convenient to use.
- a still further object of the invention is to provide a system of the character described that is economical and suitable for use with conventional oxygen delivery systems.
- the present invention is directed to a system for use with standard humidification equipment having a flow rate of at least about 3 liters/minute for delivering fluids such as oxygen, preferably warm, humidified oxygen to patients at a flow rate of from about 0 to about 2 liters/minute.
- fluids such as oxygen, preferably warm, humidified oxygen
- the term “warm/humidified oxygen” refers to oxygen gas having a temperature of from about 30° C. to about 37° C. (about 86° F. to about 98.6° F.) and a relative humidity of from about 80 to about 100%.
- the system includes a conduit having an inlet connected to a source of humidified oxygen at a flow rate of at least about 3 liters/minute and an outlet end for delivering humidified oxygen to a neo-natal patient at a flow rate of from about 0 to about 2 liters/minute.
- a first aperture extends through the sidewall of the conduit for bleeding oxygen from the conduit so that the flow in the conduit is reduced to about 2 liters/minute.
- a second aperture is provided downstream from the first aperture and extends through the sidewall for bleeding oxygen from the conduit at a rate of from about 0 to about 2 liters/minute.
- a substantially solid member is movably positionable adjacent the second aperture for defining a variably dimensionable flow path to enable control over the amount of oxygen bled through the second aperture.
- the invention is directed to a system for controlling the flow rate of fluid from a fluid source, such as humidified oxygen, for delivery to a patient.
- a fluid source such as humidified oxygen
- the system includes a conduit having an interior and an exterior separated by a substantially continuous sidewall, an inlet end in flow communication with an outlet end for flow of fluid from the fluid source through the conduit from the inlet end toward the outlet end, the inlet end being in flow communication with the source of fluid at a first flow rate and the outlet end being in flow communication with a fluid delivery device for delivering fluid to the patient at a second flow rate that is lower than the first flow rate.
- a first aperture extends through the sidewall for passage of fluid from the interior to atmospheric regions adjacent the exterior of the conduit and for reducing the flow rate of fluid within the conduit to a third flow rate that is less than the first flow rate and greater than or equal to the second flow rate.
- a second aperture is provided downstream from the first aperture extends through the sidewall.
- a substantially solid member is movably positionable adjacent the second aperture for defining a variably dimensionable flow path for passage of fluid from the interior to atmosphere regions adjacent the exterior of the conduit. Variation of the dimension of the variably dimensionable flow path selectively enables escape of fluid from the interior of the conduit to provide the second flow rate of fluid.
- the invention in another embodiment, relates to a system for delivering humidified oxygen to a patient.
- the system preferably includes a conduit having an inlet connected to a source of humidified oxygen at a first flow rate and an outlet end for delivering humidified oxygen to a patient at a second flow rate that is less than the first flow rate.
- a first flowpath extends through a sidewall of the conduit for continuously bleeding oxygen from the conduit.
- a second flowpath is located downstream from the first flowpath and extends through the sidewall of the conduit for continuously bleeding oxygen from the conduit at a rate of from about 0 liters/minute or above.
- a substantially solid member is movably positionable adjacent the second flowpath for selectively blocking and unblocking portions of the second flowpath for defining a variably dimensionable flow path in order to control over the amount of oxygen flowing through the second flowpath.
- the invention relates to a method for delivering treatment fluids, such as humidified oxygen, to pediatric patients from a source of fluid of the type used for adults and having a flow rate above about 3 liters per minute.
- the method includes the steps of providing the oxygen source, placing it in flow communication with a delivery system in accordance with the invention and manipulating the delivery system to achieve a desired flow rate to the patient of from about 0 to about 2 liters per minute.
- the invention advantageously enables warm, humidified oxygen to be delivered at low flow rates heretofore unobtainable by conventional hospital equipment.
- the invention thus enables the use of standard oxygen and other delivery and humidification systems in the treatment of pediatric and other patients having treatment flow rate requirements below those available from standard treatment equipment.
- the system also advantageously adapts to fit pediatric output components, such as pediatric cannulas having smaller tubing size, while connecting to adult or standard input components having larger tubing sizes.
- FIG. 1 is an exploded perspective view of a preferred embodiment of a flow control device in accordance with the invention.
- FIG. 2 is a perspective view of the device of FIG. 1 in an assembled state.
- FIG. 3 is a plan view of an oxygen delivery system utilizing the device of FIG. 1.
- FIG. 4 is a side plan view of a flow member component of the device of FIG. 1.
- FIG. 5 is an enlarged view of a portion of the component of FIG. 4.
- FIG. 6 is a side plan view of an alternate embodiment of the component of FIG. 4.
- FIG. 7 is a perspective view of a flow control component of the system of FIG. 1.
- FIG. 8 is an end view of the system of FIG. 1 showing the relationship between a flow component and a control component.
- FIG. 9 is an inlet end view of the component of FIG. 7.
- FIG. 10 is an enlarged side plan view of a portion of the system of FIG. 1 showing a control member fully blocking an aperture.
- FIG. 11 is an enlarged side plan view of a portion of the system of FIG. 1 showing a control member partially blocking an aperture.
- FIG. 12 is an enlarged side plan view of a portion of the system of FIG. 1 showing an aperture in an unblocked state.
- FIG. 13 is a perspective inlet end view of a flow control device in accordance with another embodiment of the invention.
- FIG. 14 is a perspective outlet end view of the device of FIG. 13.
- FIG. 15 is a side plan view of a flow member component of the device of FIG. 14.
- FIG. 16 is a top plan view of the component of FIG. 15.
- FIG. 17 is an inlet end view of a cap member component of the system of FIG. 13.
- FIG. 18 is a side view of the component of FIG. 17.
- FIG. 19 is a cross-sectional view of FIG. 18 taken along line 19 - 19 .
- FIG. 20 is a side plan view of a flow control device in accordance with another embodiment of the invention.
- FIG. 21 is a perspective view of a flow control component of the device of FIG. 20.
- FIG. 22 is a partial cross-sectional view taken along line 22 - 22 of FIG. 20.
- FIG. 23 is a front perspective view of a flow control system in accordance with yet another embodiment of the invention.
- FIG. 24 is an exploded perspective view of the device of FIG. 23.
- FIG. 25 is a front end view of a component of the device of FIG. 23.
- FIG. 26 is a left side view of the component of FIG. 25.
- FIG. 27 is a right side view of the component of FIG. 25.
- FIG. 28 is a rear plan view of another component of the device of FIG. 23.
- FIG. 29 is a rear perspective view of the component of FIG. 28.
- FIGS. 30 a, 30 b and 30 c are detailed cross-sectional side views of the system of FIG. 23 showing the relationship between the flow component and the control component.
- FIG. 31 is a rear perspective view of a flow control system in accordance with still another embodiment of the invention.
- FIG. 32 is a side plan view of another component of the flow control system of FIG. 31.
- FIG. 33 is a front end view of the component of FIG. 34.
- FIG. 34 is a close-up view of a portion of the component of FIG. 34.
- FIGS. 35 a and 35 b are front and rear perspective views, respectively, of a component of the flow control system of FIG. 31.
- FIG. 36 is a cross-sectional side view of the component of FIGS. 35 a and 35 b.
- FIGS. 37 a, 37 b and 37 c are cross-sectional side views of the system of FIG. 31 showing the relationship between the flow component and the control component.
- a system 10 for controlling the flow rate of fluid such as a gas-liquid mixture
- a source of fluid such as a source of warm, humidified oxygen 12
- the system 10 is available to deliver the flow of warm, humidified oxygen to a pediatric or infant patient as by a pediatric or infant sized nasal cannula 14 .
- Each component of the system 10 is preferably made of a plastic material, such as polyethylene and manufactured using extrusion, blow molding or thermo-forming techniques.
- warm/humidified oxygen refers to oxygen gas having a temperature of from about 30° C. to about 37° C. (about 86° F. to about 98.6° F.) and a relative humidity of from about 80 to about 100%.
- a preferred source of warm/humidified oxygen is provided by flowing hospital grade oxygen through a heated humidifier available under the trade name ConchaTherm IV from Hudson RCI of Temecula, Calif.
- ConchaTherm IV The instruction manual for the ConchaTherm IV states that it requires a flow rate of 2 liters per minute or greater to prevent overheating of its electronic circuitry.
- the humidifier To avoid problems associated with circuit overheating and the like, it is desirable to operate the humidifier at a setting above its lowest possible setting. Accordingly, it is preferred that when the ConchaTherm IV humidifier is used as a source of warm, humidified oxygen, that it be operated at a flowrate of from about 3 to about 15 liters per minute, most preferably from about 6 to about 10 liters per minute.
- the system of the present invention enables these flowrates to be reduced to flowrates suitable for pediatric or infant patients, i.e. from about slightly above 0 liters per minute, such as about 1 ⁇ 8 liter per minute, to about 2 liters per minute.
- the system 10 includes flow member 16 having an open inlet end 18 placeable in flow communication with the source of humidified oxygen 12 as by tubing 20 opposite an outlet end 22 in flow communication with a fitting 24 and placeable in flow communication with the cannula 14 as by tubing 26 .
- a control member 28 cooperates with the flow member 16 for adjustably controlling the flow of humidified oxygen out of the fitting 24 .
- the fitting 24 is sized to cooperate with pediatric sized delivery apparatus, i.e., pediatric tubing, cannulas and the like, while the inlet end 18 is sized to cooperate with the tubing 20 for flow communication of the oxygen from standard source apparatus, such as the ConchaTherm IV humidifier.
- the end 18 may include flange 29 for snugly engaging the tubing 20 .
- the flow member 16 is preferably provided by a conduit 30 , an open first end of which provides the inlet end 18 .
- the opposite end of the conduit 30 is closed, as by end wall 32 .
- the fitting 24 extends through the end wall 32 to provide a path for flow of the oxygen.
- the conduit 30 is preferably cylindrical and includes cylindrical sidewall 36 .
- the cylindrical sidewall 36 is substantially solid with the exception of an aperture 38 and an aperture 40 which are spaced apart from one another and extend through the sidewall 36 .
- the aperture 38 is preferably upstream of the aperture 40 or located between the aperture 40 and the inlet end 18 and is preferably a circular aperture.
- the aperture 40 is preferably a triangular shaped aperture, as best seen in FIG. 5.
- the aperture 38 is provided by a plurality of apertures 38 ′ and the aperture 40 is provided by a plurality of apertures 40 ′.
- Each aperture 38 ′ is preferably in alignment with each other aperture 38 ′ and each aperture 40 ′ is preferably aligned with each other aperture 40 ′ around the periphery of the sidewall 36 .
- the control member 28 includes a cylindrical member 42 having an open end 44 opposite a closed end 46 .
- the closed end 46 is preferably provided as by a circular end wall 48 enclosing the end of the cylindrical member 42 .
- the end wall 48 includes an aperture 50 centrally located and sized to receive the fitting 24 in a snap-fit relationship to maintain the control member 28 and the flow member 16 closely adjacent one another.
- the diameter of the cylindrical member 42 is greater than that of the cylindrical member 30 to enable the cylindrical member 42 to receive the cylindrical member 30 , preferably sized to provide an annular area 52 there between (FIGS. 3 and 8) having a width sufficient to enable the flow of warm, humidified oxygen from the cylindrical member 30 through the apertures 38 and 40 .
- the control member 28 preferably includes projections 54 and 56 which extend from interior sidewall 58 of the cylindrical member 42 and rotatably engage opposite sides of the exterior of the cylindrical member 30 .
- the projection 56 is opposite the projection 54 so that a portion of the cylindrical member 30 is captured there between.
- the rotation of the cylinders 30 and 43 is preferably limited as by stops 60 and 62 located on the exterior of the cylindrical member 30 for engaging the outside edges of the projection 54 or the projection 56 , as may be preferred.
- the stops 60 and 62 are preferably located such that contact with the stop 60 defines the position of the projection 54 when it fully blocks or sealingly covers the aperture 40 against flow there through and contact with the stop 62 defines the position of the projection 54 when it fully clears or opens the aperture 40 for flow there through.
- the cylindrical member 42 and the cylindrical member 30 are rotatable relative to one another so that the projection 54 may be positioned to be clear of the aperture 40 , partially block the aperture 40 or completely block the aperture 40 .
- the apertures 38 and 40 (and the apertures 38 ′ and 40 ′) function to enable the inlet flow of humidified oxygen, represented by the arrow 66 (FIG. 3) to be altered to provide a desired outlet flow of humidified oxygen, represented by the arrow 68 , to the patient.
- standard equipment available for warming and humidifying oxygen is generally not suitable for use with pediatric patients, particularly neonatal patients, who require treatment rates of less than about 2 liters per minute, sometime only slightly above zero liters per minute.
- the system 10 is suitable for use with standard humidification equipment, such as the ConchaTherm IV described above, and is adjustable to control humidified oxygen available at a flow of from about 3 to about 15 liters per minute in order to provide delivery of humidified oxygen at a flow rate of from about 0 liters per minute to about 2 liters per minute. It will be understood, however, that the invention may be configured to yield various desired flow rates from a given flow source.
- the aperture 38 is sized to reduce the flow rate in the cylindrical member 30 from an input flow rate from the humidifier of about 8 liters per minute to a maximum flow rate in the cannula 14 of about 2 liters per minute or less.
- the aperture 38 provides a passage sized to leak a flow rate of about 6 liters per minute there through and into the annular area 52 and out of the open end 44 to the surrounding atmosphere, as represented by the arrows 70 .
- the cylindrical member 42 also serves to expand, deflect and muffle the flow represented by the arrows 70 to minimize noise and directional air flow which might disturb the patient.
- the aperture 40 and the projection 54 cooperate to enable the flow rate 68 to be maintained at about 2 liters per minute, adjusted to about 0 liters per minute or reduced to a desired flow rate within this range.
- the flow rate 68 will be about 2 liters per minute, as flow will not be conducted from the conduit 30 through the aperture 40 .
- the aperture 40 is partially blocked by the projection 54 , as shown in FIG.
- a flow indicated by arrows 74 travels from the conduit 30 there through in the manner of the flow 70 , reducing the flow indicated by arrow 68 delivered to the patient to a rate of less than about 2 liters per minute and greater than about 0 liters per minute.
- the degree of blockage of aperture 40 can be adjusted to provide any desired flow rate within this range.
- a pressure gauge or meter may be connected in line with the tubing 68 and/or the system may be calibrated prior to use to facilitate delivery of desired oxygen flow rates to the patient.
- a flow meter may be connected in place of the cannula 14 and the dimension of the aperture 40 adjusted as previously described. The rotational position of the flow control member may be recorded against the flow rate 68 measured by a flow meter.
- indicia such as symbols designating open and closed and gradations there between (e.g., 1 ⁇ 4, 1 ⁇ 2, 3 ⁇ 4, etc.) may be provided around the circumference of the control member and a corresponding mark or indicia provided on the flow member 16 to indicate the relative dimension of the aperture in terms of blockage by the projection 54 or other indicia corresponding to the flow rate.
- the system 10 is preferably dimensioned as set forth in Table 1 for use in delivering a flow rate of from about 0 to about 2 liters per minute when used with an oxygen humidifier capable of providing warm, humidified oxygen at an output of about 6 liters per minute.
- Table 1 Dimension Distance (inches/cm) A (FIG. 5) 0.001 B (FIG. 5) 0.015 C (FIG. 5) 0.033 D (FIG. 5) 0.055 E (FIG. 5) 105° (0.878 inch dia.) F (FIG. 4) 0.870 inch dia.
- G (FIG. 4) 1.50 H (FIG. 8) 2.00 I (FIG. 9) 0.878 inch dia J (FIG. 9) 0.166 K (FIG. 9) 2.00 L (FIG. 3) 1.06 M (FIG. 4) 0.80 Aperture 3 8 0.040 dia.
- FIGS. 13 - 19 there is shown another embodiment of a system 100 for controlling the flow rate of fluid, such as a gas-liquid mixture, from a source of fluid, such as a source of warm, humidified oxygen for delivery to a patient as by a nasal cannula.
- a source of fluid such as a source of warm, humidified oxygen for delivery to a patient as by a nasal cannula.
- the system 100 includes flow member 102 having an inlet end 104 placeable in flow communication with the source of warm, humidified oxygen and an opposite outlet end 106 in flow communication with a fitting 108 and placeable in flow communication with a cannula.
- a control member 110 cooperates with the flow member 102 for adjustably controlling the flow of humidified oxygen out of the fitting 108 .
- the flow member 102 is preferably provided by a conduit 112 , an open end of which provides the inlet end 104 .
- the opposite end of the conduit 112 is closed, as by end wall 114 .
- the fitting 108 extends through the end wall 114 to provide a flow path for the warm, humidified oxygen.
- Cylindrical sidewall 118 of the conduit 112 is substantially solid with the exception of at least one aperture 120 and at least one aperture 122 which are spaced apart from one another and extend through the sidewall 118 .
- the aperture 120 is preferably upstream of the aperture 122 and is preferably a circular aperture.
- the aperture 122 is preferably a circular aperture.
- An additional fitting 124 optionally extends from the fitting 108 for connection with a flow meter for measuring the flow rate of humidified oxygen being delivered to the patient.
- the exterior of the end wall 114 is preferably flanged to provide a snap-fit relationship with the control member 110 which permits relative rotation of the control member 110 and the flow member 102 .
- the control member 110 includes a cap member 126 including an aperture 128 centrally located and sized to receive the fitting 108 or the exterior of the end wall 114 .
- the end wall thickness of the cap member 126 (FIG. 19) is sized to provide a snap-fit relationship with the flanged exterior of the end wall 114 of the flow member 102 to maintain the control member 110 and the flow member 102 adjacent one another.
- the circumference of the cap member 126 is preferably textured, such as knurls 131 , to facilitate grasping thereof.
- the cap member 110 includes projections 132 and 134 which extend from the interior circumference of the cap member 110 and rotatably engage opposite sides of the exterior of the conduit 102 .
- the projection 132 is opposite the projection 134 so that a portion of the conduit is captured there between.
- the rotation of the cap member relative to the conduit is preferably limited by as by stops 136 and 138 located on the exterior of the conduit 102 for engaging the outside edges of the projection 132 .
- the stops 136 and 138 are preferably located such that contact with the stop 132 defines the position of the projection 132 when it fully blocks the aperture 122 and contact with the stop 138 defines the position of the projection 132 when it fully clears the aperture 122 .
- a shroud 140 (FIGS. 13 and 14) is preferably provided to surround the conduit 102 to provide an annular area 142 there between sufficient to enable the flow of humidified oxygen from the flow member 102 through the apertures 120 and 122 .
- the shroud 140 is preferably of two-piece construction and including a pair of half cylinders 144 and 146 which press fit together.
- a plurality of elongate baffle members 148 preferably extend between the interior of the shroud 140 and the exterior of the conduit 112 in the annular area 142 there between and are located so as to contact one or more of the apertures 120 , as may be desired.
- the baffle members 148 are preferably co-formed with the half cylinders 144 and 146 .
- the baffle members 148 function to selectively cover one or more of the apertures 120 and to disrupt and diffuse flow exiting the undercovered apertures 120 and 122 .
- the shroud member 140 abuts the cap member 110 but is preferably not connected thereto.
- the cap member 110 and the flow member 102 may be rotated relative to one another to selectively position the projection 132 relative to the aperture 122 in the manner previously described for projection 54 and aperture 40 of system 10 of FIGS. 1 - 12 .
- FIGS. 20 - 22 there is shown another embodiment of a system 200 for controlling the flow rate of fluid, such as a gas-liquid mixture, from a source of fluid, such as a source of humidified oxygen for delivery to a patient as by a nasal cannula.
- a source of fluid such as a source of humidified oxygen
- the system 200 includes a flow member 202 having an inlet end 204 placeable in flow communication with the source of humidified oxygen opposite an outlet end 206 in flow communication with a fitting 208 and placeable in flow communication with a cannula for delivery of the humidified oxygen to a patient.
- a control member 210 cooperates with the flow member 202 for adjustably controlling the flow of humidified oxygen out of the fitting 208 .
- the flow member 202 is preferably provided by a conduit 212 , one open end of which provides the inlet end 204 .
- the opposite end of the conduit 212 is closed, as by end wall 214 .
- the fitting 208 extends through the end wall 214 to provide a flow path for the oxygen.
- the cylindrical sidewall of the conduit 212 is substantially solid with the exception of at least one aperture 218 and at least one aperture 220 which are spaced apart from one another and extend through the sidewall of the conduit 212 .
- the aperture 218 is preferably upstream of the aperture 220 between aperture 220 and inlet end 204 and is preferably a circular aperture.
- the aperture 220 is preferably a triangular shaped aperture.
- the control member 210 is preferably provided by a semi-circular member 222 having a width that is preferably at least as great as the largest width dimension of the aperture 220 and having a radius corresponding to the inner radius of the conduit 212 so that an outwardly facing surface 224 of the control member 210 will bear against interior sidewall 226 of the conduit 212 .
- a pair of generally L-shaped channels 228 are preferably co-formed with the conduit 212 and extend circumferentially around the interior sidewall 226 of the conduit 212 for slidably receiving the semi-circular member 222 .
- a stop 230 preferably extends from the surface 224 of the member 222 to engage the length extremes or edges of the aperture 220 and limit travel of the member 222 .
- the member 222 may be slidably positioned to vary the flow rate of humidified oxygen through the aperture 220 .
- the stop 230 may be positioned at position A to substantially close the aperture 220 and provide a flow through ihe fitting 208 to the patient of about 2 liters per minute, at position B to substantially open the aperture 220 and provide a flow through the fitting 208 of about 0 liters per minute and at points there between, such as points C or D, to provide flow rates within the range of about 0 to about 2 liters per minute as may be desired.
- a gasket material, such as rubber strips 232 may be positioned between the member 222 and the sidewall 226 between the channels 228 to minimize leakage when the member 222 is positioned to seal the aperture 220 or a portion thereof.
- FIGS. 23 - 29 show another embodiment of a system 300 for controlling the flow rate of humidified oxygen to patients including pediatric or infant patients.
- the system 300 includes a flow member 302 and a control member 304 .
- the flow member 302 is preferably provided by a conduit 306 having an open inlet end 308 placeable in flow communication with a source of warm, humidified oxygen.
- the opposite end of the of the conduit 306 is closed as by end wall 310 .
- a fitting 312 connectable to a cannula and associated tubing extends through the end wall 310 to provide a flow path for the warm, humidified oxygen.
- a pair of wings 314 and 316 project from the fitting 312 adjacent the end wall 3 10 for grasping by a user.
- Cylindrical sidewall 318 of the conduit 306 is substantially solid with the exception of apertures 320 and 322 which are spaced apart from one another and extend through the sidewall 318 .
- the aperture 320 is upstream of the aperture 322 and is preferably a single circular aperture.
- the aperture 322 preferably includes a lateral slit portion 324 parallel to the length of the conduit 306 and a v-shaped slit 326 extending generally perpendicular to the slit portion 324 along the circumference of the conduit 306 .
- the control member 304 is configured to selectively engaging portions of the aperture 322 for controlling the area of the aperture 322 available to bleed off oxygen traveling through the conduit 306 .
- a projection 328 is preferably defined on the surface of the conduit 306 for selectively engaging notches 330 located on an interior surface of the control member 304 for facilitating incremental relative movement of the control member 304 and the conduit 306 .
- the end wall 310 of the conduit 306 preferably includes a flange 332 for engaging fingers 334 located adjacent an aperture 336 defined through end wall 338 of the control member 304 for passage of the end wall 310 , the wings 314 and 316 and the fitting 312 .
- Indicia 340 and 342 are preferably provided on the exterior of the end wall 338 for aligning with the wing 314 when the aperture is fully opened and fully closed, respectively.
- the exterior surface of sidewall 343 of the control member 304 preferably includes knurls 344 for facilitating grasping by the user during adjustment of the system 300 .
- control member includes interior cylindrical sidewalls 350 and 352 spaced apart by an open area or slot 354 .
- control member 304 and the conduit 306 may be moved relative to one another for selectively engaging portions of the aperture 322 for controlling the area of the aperture 322 available to bleed off oxygen traveling through the conduit 306 .
- Fingers 356 , 357 and 358 project between the exterior of the sidewall 350 , the interior of the end wall 338 and the interior of the conduit 306 for strength. Likewise, fingers 359 , 360 and 361 project between the exterior of the sidewall 352 , the interior of the sidewall 338 and the interior of the conduit 306 .
- the fingers 357 and 358 are preferably of a lesser width than that of the slot 354 to enable escaping oxygen to expand relatively quickly and thereby reduce its velocity to reduce noise associated with the oxygen that is being bled off through the aperture 322 .
- the conduit 306 may be dimensioned similar to that of the conduit or cylindrical member 30 .
- the aperture 320 preferably has a diameter of about 0.04 inches, so that it may leak or bleed a flow rate of about 6 liters per minute there through.
- the lateral slit 324 preferably has a length of about 0.33 inches and a length of about 0.52 inches.
- the v-shaped slit 326 preferably extends about 105° around the circumference of the conduit 306 and tapers in width from about 0.55 inches adjacent the slit 324 to about 0.01 inches at its tip.
- the slot 354 of the cover member 304 preferably tapers outwardly over the thickness of the sidewall 350 (about 0.55 inches, for example), with slot 354 preferably having an initial width of about 0.3 inches and a terminal width of about 0.5 inches.
- FIGS. 31 - 36 show another embodiment of a system 400 for controlling the flow rate of humidified oxygen to patients including pediatric or infant patients.
- the system 400 includes a flow member 402 and a control member 404 .
- the flow member 402 is preferably provided by a conduit 406 having an open inlet end 408 placeable in flow communication with a source of warm, humidified oxygen.
- the opposite end of the of the conduit 406 is closed as by end wall 410 .
- a fitting 412 connectable to a cannula and associated tubing extends through the end wall 410 to provide a flow path for the warm, humidified oxygen.
- a pair of wings 414 and 416 project from the fitting 412 adjacent the end wall 410 for grasping by a user.
- Cylindrical sidewall 418 of the conduit 406 is substantially solid with the exception of apertures 420 and 422 which are spaced apart from one another and extend through the sidewall 418 .
- the aperture 420 is upstream of the aperture 422 and is preferably a single circular aperture.
- the aperture 422 is preferably a lateral slit 424 having a length axis parallel to the length of the conduit 406 .
- the control member 404 is configured to selectively engaging portions of the aperture 422 for controlling the area of the aperture 422 available to bleed off oxygen traveling through the conduit 406 .
- a spiraled interior sidewall 426 is provided on the control member 404 .
- a projection 428 is preferably defined on the surface of the conduit 406 for selectively engaging either a notch 430 defined along an uppermost edge of the sidewall 426 or a side edge 431 of the sidewall 426 .
- the notch 430 and the edge 431 define the limits of travel of the projection 428 .
- the end wall 410 of the conduit 406 preferably includes a flange 432 for engaging fingers 434 located adjacent an aperture 436 defined through end wall 438 of the control member 404 for passage of the end wall 410 , the wings 414 and 416 and the fitting 412 .
- Indicia 440 is preferably provided on the exterior of the end wall 438 for aligning with the wing 414 or 416 to indicate the degree to which the aperture or slit 422 is opened or closed or the approximate flowrate of gas being delivered to the patient.
- the exterior surface of sidewall 443 of the control member 404 preferably includes knurls 444 for facilitating grasping by the user during adjustment of the system 400 .
- An open area or slot 450 is located between side edge 431 and an opposite side edge 452 of the spiraled sidewall 426 .
- the control member 304 and the conduit 306 may be moved relative to one another for selectively engaging portions of the aperture 322 for controlling the area of the aperture 322 available to bleed off oxygen traveling through the conduit 306 .
- the aperture 422 is totally blocked in FIG. 37 a; partially blocked in FIG. 37 b and totally unblocked in FIG. 37 c.
- Reinforcing members 456 and 458 are provided to reinforce the sidewalls 443 and 426 , respectively.
- the members 456 and 458 are preferably flat, having a triangular outline. One leg of each member is against to the interior of the sidewall it is reinforcing and the other leg is against the interior of end wall 438 .
- the conduit 406 may be dimensioned similar to that of the conduit 306 .
- the aperture 420 preferably has a diameter of about 0.04 inches, so that it may leak or bleed a flow rate of about 6 liters per minute there through.
- the lateral slit 424 preferably has a length of about 0.30 inches and a width of about 0.011 inches.
- the spiraled sidewall 426 preferably increases in height in a cubic function to help linearize the air flow through the slit 424 as a function of the relative position of the flow member 402 and the control member 404 .
- the height difference between the lowest and highest portions of the sidewall is preferably about 0.3 inches so that the end ranges of relative rotation of the flow member and the control member represent the slit 424 being fully blocked or fully open.
- the spiraled sidewall 426 preferably has a diameter of about 0.4 inches (the member 404 having an outer diameter of about 2 inches).
- the invention enables warm, humidified oxygen to be delivered to patients in a manner which has not previously been possible.
- limitations in the design of conventional equipment for providing warm, humid oxygen requires that they be operated at flow rates that are generally greater than the desired flow rate that the oxygen be delivered to the patients such as pediatric and infant patients and many elderly patients.
- flow rates are generally greater than the desired flow rate that the oxygen be delivered to the patients such as pediatric and infant patients and many elderly patients.
- such equipment should, practically speaking, be operated at flow rates significantly greater than its minimum possible operating flow rate.
- the invention interfaces between conventional humidification equipment and its normal operating parameters to enable warm, humidified oxygen to be delivered at the very low flow rates often required for various patients.
- the humidification equipment can be operated at conditions which avoid overheating and other problems, yet the patient is able to receive very low flow rates of the warm, humid oxygen. Accordingly, the invention satisfies a long felt need in the art in a convenient and efficient manner.
Landscapes
- Health & Medical Sciences (AREA)
- Emergency Medicine (AREA)
- Pulmonology (AREA)
- Engineering & Computer Science (AREA)
- Anesthesiology (AREA)
- Biomedical Technology (AREA)
- Heart & Thoracic Surgery (AREA)
- Hematology (AREA)
- Life Sciences & Earth Sciences (AREA)
- Animal Behavior & Ethology (AREA)
- General Health & Medical Sciences (AREA)
- Public Health (AREA)
- Veterinary Medicine (AREA)
- Respiratory Apparatuses And Protective Means (AREA)
Abstract
Description
- This invention relates generally to devices for supplying fluids to patients and more particularly to devices for supplying warm, humidified oxygen gas to patients.
- Oxygen is commonly delivered in the practice of medicine to patients as a gas. The oxygen flows from a source to a delivery device such as a nasal cannula, for delivery to the patient's respiratory tract.
- The administration of oxygen to patients, including neonatal, pediatric and elderly patients, requires the selection of an oxygen delivery system that suits the patient's size, needs and therapeutic result. Typically, the oxygen gas delivered directly from a hospital oxygen delivery system is dry and cold. Delivering dry and cold oxygen to an infant, for example, can undesirably lower body temperature and promote dehydration. Accordingly, it is often preferred to warm and humidify the oxygen so that the patient inhales a warm gas-liquid mixture.
- It has proved difficult to supply warm oxygen having sufficient humidity at flow rates of less than about 2 liters/minute. Standard equipment available for both warming and humidifying oxygen is suitable for use with adults and is adjustable to deliver a volumetric fluid flow of from about 2 to about 15 liters per minute. These devices, however, generally require a minimum flowrate of at least about 2 liters per minute in order to operate. Pediatric patients, particularly neonatal patients, require a flow rate of less than about 2 liters per minute, sometimes only slightly above zero liters per minute (e.g. about ⅛ liter per minute).
- Accordingly, there is a need in the art for a device which enables warm, humidified oxygen to be supplied to pediatric/infant patients at flow rates of from about 2 liters per minute and below.
- It is therefore an object of the invention to provide a system for controlling the flow rate of fluid, such as warm, humidified oxygen, from a fluid source.
- An additional object of the invention is to provide a system of the character described that is compatible with existing equipment, such as oxygen humidifiers.
- A further object of the invention is to provide a system of the character described that is suitable for use with pediatric patients.
- It is another object of the invention to provide a system of the character described that is selectively adjustable to enable an oxygen flow rate of from about 0 to about 2 liters per minute.
- A further object of the invention is to provide a system of the character described that is uncomplicated in configuration and convenient to use.
- A still further object of the invention is to provide a system of the character described that is economical and suitable for use with conventional oxygen delivery systems.
- With regard to the foregoing, the present invention is directed to a system for use with standard humidification equipment having a flow rate of at least about 3 liters/minute for delivering fluids such as oxygen, preferably warm, humidified oxygen to patients at a flow rate of from about 0 to about 2 liters/minute. As used herein, the term “warm/humidified oxygen” refers to oxygen gas having a temperature of from about 30° C. to about 37° C. (about 86° F. to about 98.6° F.) and a relative humidity of from about 80 to about 100%.
- The system includes a conduit having an inlet connected to a source of humidified oxygen at a flow rate of at least about 3 liters/minute and an outlet end for delivering humidified oxygen to a neo-natal patient at a flow rate of from about 0 to about 2 liters/minute. A first aperture extends through the sidewall of the conduit for bleeding oxygen from the conduit so that the flow in the conduit is reduced to about 2 liters/minute. A second aperture is provided downstream from the first aperture and extends through the sidewall for bleeding oxygen from the conduit at a rate of from about 0 to about 2 liters/minute. A substantially solid member is movably positionable adjacent the second aperture for defining a variably dimensionable flow path to enable control over the amount of oxygen bled through the second aperture.
- In another embodiment, the invention is directed to a system for controlling the flow rate of fluid from a fluid source, such as humidified oxygen, for delivery to a patient.
- In a preferred embodiment, the system includes a conduit having an interior and an exterior separated by a substantially continuous sidewall, an inlet end in flow communication with an outlet end for flow of fluid from the fluid source through the conduit from the inlet end toward the outlet end, the inlet end being in flow communication with the source of fluid at a first flow rate and the outlet end being in flow communication with a fluid delivery device for delivering fluid to the patient at a second flow rate that is lower than the first flow rate.
- A first aperture extends through the sidewall for passage of fluid from the interior to atmospheric regions adjacent the exterior of the conduit and for reducing the flow rate of fluid within the conduit to a third flow rate that is less than the first flow rate and greater than or equal to the second flow rate. A second aperture is provided downstream from the first aperture extends through the sidewall. A substantially solid member is movably positionable adjacent the second aperture for defining a variably dimensionable flow path for passage of fluid from the interior to atmosphere regions adjacent the exterior of the conduit. Variation of the dimension of the variably dimensionable flow path selectively enables escape of fluid from the interior of the conduit to provide the second flow rate of fluid.
- In another embodiment, the invention relates to a system for delivering humidified oxygen to a patient. The system preferably includes a conduit having an inlet connected to a source of humidified oxygen at a first flow rate and an outlet end for delivering humidified oxygen to a patient at a second flow rate that is less than the first flow rate. A first flowpath extends through a sidewall of the conduit for continuously bleeding oxygen from the conduit. A second flowpath is located downstream from the first flowpath and extends through the sidewall of the conduit for continuously bleeding oxygen from the conduit at a rate of from about 0 liters/minute or above. A substantially solid member is movably positionable adjacent the second flowpath for selectively blocking and unblocking portions of the second flowpath for defining a variably dimensionable flow path in order to control over the amount of oxygen flowing through the second flowpath.
- In yet another aspect, the invention relates to a method for delivering treatment fluids, such as humidified oxygen, to pediatric patients from a source of fluid of the type used for adults and having a flow rate above about 3 liters per minute. The method includes the steps of providing the oxygen source, placing it in flow communication with a delivery system in accordance with the invention and manipulating the delivery system to achieve a desired flow rate to the patient of from about 0 to about 2 liters per minute.
- The invention advantageously enables warm, humidified oxygen to be delivered at low flow rates heretofore unobtainable by conventional hospital equipment. The invention thus enables the use of standard oxygen and other delivery and humidification systems in the treatment of pediatric and other patients having treatment flow rate requirements below those available from standard treatment equipment. The system also advantageously adapts to fit pediatric output components, such as pediatric cannulas having smaller tubing size, while connecting to adult or standard input components having larger tubing sizes.
- The above and other features and advantages of the present invention will become further known from the following detailed description considered in conjunction with the accompanying drawings in which:
- FIG. 1 is an exploded perspective view of a preferred embodiment of a flow control device in accordance with the invention.
- FIG. 2 is a perspective view of the device of FIG. 1 in an assembled state.
- FIG. 3 is a plan view of an oxygen delivery system utilizing the device of FIG. 1.
- FIG. 4 is a side plan view of a flow member component of the device of FIG. 1.
- FIG. 5 is an enlarged view of a portion of the component of FIG. 4.
- FIG. 6 is a side plan view of an alternate embodiment of the component of FIG. 4.
- FIG. 7 is a perspective view of a flow control component of the system of FIG. 1.
- FIG. 8 is an end view of the system of FIG. 1 showing the relationship between a flow component and a control component.
- FIG. 9 is an inlet end view of the component of FIG. 7.
- FIG. 10 is an enlarged side plan view of a portion of the system of FIG. 1 showing a control member fully blocking an aperture.
- FIG. 11 is an enlarged side plan view of a portion of the system of FIG. 1 showing a control member partially blocking an aperture.
- FIG. 12 is an enlarged side plan view of a portion of the system of FIG. 1 showing an aperture in an unblocked state.
- FIG. 13. is a perspective inlet end view of a flow control device in accordance with another embodiment of the invention.
- FIG. 14 is a perspective outlet end view of the device of FIG. 13.
- FIG. 15 is a side plan view of a flow member component of the device of FIG. 14.
- FIG. 16 is a top plan view of the component of FIG. 15.
- FIG. 17 is an inlet end view of a cap member component of the system of FIG. 13.
- FIG. 18 is a side view of the component of FIG. 17.
- FIG. 19 is a cross-sectional view of FIG. 18 taken along line 19-19.
- FIG. 20 is a side plan view of a flow control device in accordance with another embodiment of the invention.
- FIG. 21 is a perspective view of a flow control component of the device of FIG. 20.
- FIG. 22 is a partial cross-sectional view taken along line 22-22 of FIG. 20.
- FIG. 23 is a front perspective view of a flow control system in accordance with yet another embodiment of the invention.
- FIG. 24 is an exploded perspective view of the device of FIG. 23.
- FIG. 25 is a front end view of a component of the device of FIG. 23.
- FIG. 26 is a left side view of the component of FIG. 25.
- FIG. 27 is a right side view of the component of FIG. 25.
- FIG. 28 is a rear plan view of another component of the device of FIG. 23.
- FIG. 29 is a rear perspective view of the component of FIG. 28.
- FIGS. 30 a, 30 b and 30 c are detailed cross-sectional side views of the system of FIG. 23 showing the relationship between the flow component and the control component.
- FIG. 31 is a rear perspective view of a flow control system in accordance with still another embodiment of the invention.
- FIG. 32 is a side plan view of another component of the flow control system of FIG. 31.
- FIG. 33 is a front end view of the component of FIG. 34.
- FIG. 34 is a close-up view of a portion of the component of FIG. 34.
- FIGS. 35 a and 35 b are front and rear perspective views, respectively, of a component of the flow control system of FIG. 31.
- FIG. 36 is a cross-sectional side view of the component of FIGS. 35 a and 35 b.
- FIGS. 37 a, 37 b and 37 c are cross-sectional side views of the system of FIG. 31 showing the relationship between the flow component and the control component.
- With initial reference to FIGS. 1-3, there is shown a
system 10 for controlling the flow rate of fluid, such as a gas-liquid mixture, in flow communication with a source of fluid, such as a source of warm, humidifiedoxygen 12. Thesystem 10 is available to deliver the flow of warm, humidified oxygen to a pediatric or infant patient as by a pediatric or infant sizednasal cannula 14. Each component of thesystem 10 is preferably made of a plastic material, such as polyethylene and manufactured using extrusion, blow molding or thermo-forming techniques. - As noted previously, the term “warm/humidified oxygen” refers to oxygen gas having a temperature of from about 30° C. to about 37° C. (about 86° F. to about 98.6° F.) and a relative humidity of from about 80 to about 100%. A preferred source of warm/humidified oxygen is provided by flowing hospital grade oxygen through a heated humidifier available under the trade name ConchaTherm IV from Hudson RCI of Temecula, Calif. The instruction manual for the ConchaTherm IV states that it requires a flow rate of 2 liters per minute or greater to prevent overheating of its electronic circuitry.
- To avoid problems associated with circuit overheating and the like, it is desirable to operate the humidifier at a setting above its lowest possible setting. Accordingly, it is preferred that when the ConchaTherm IV humidifier is used as a source of warm, humidified oxygen, that it be operated at a flowrate of from about 3 to about 15 liters per minute, most preferably from about 6 to about 10 liters per minute. The system of the present invention enables these flowrates to be reduced to flowrates suitable for pediatric or infant patients, i.e. from about slightly above 0 liters per minute, such as about ⅛ liter per minute, to about 2 liters per minute.
- The
system 10 includesflow member 16 having anopen inlet end 18 placeable in flow communication with the source of humidifiedoxygen 12 as bytubing 20 opposite anoutlet end 22 in flow communication with a fitting 24 and placeable in flow communication with thecannula 14 as bytubing 26. Acontrol member 28 cooperates with theflow member 16 for adjustably controlling the flow of humidified oxygen out of the fitting 24. The fitting 24 is sized to cooperate with pediatric sized delivery apparatus, i.e., pediatric tubing, cannulas and the like, while theinlet end 18 is sized to cooperate with thetubing 20 for flow communication of the oxygen from standard source apparatus, such as the ConchaTherm IV humidifier. In this regard, theend 18 may includeflange 29 for snugly engaging thetubing 20. - With additional reference now to FIGS. 4-6, the
flow member 16 is preferably provided by aconduit 30, an open first end of which provides theinlet end 18. The opposite end of theconduit 30 is closed, as byend wall 32. The fitting 24 extends through theend wall 32 to provide a path for flow of the oxygen. Theconduit 30 is preferably cylindrical and includescylindrical sidewall 36. Thecylindrical sidewall 36 is substantially solid with the exception of anaperture 38 and anaperture 40 which are spaced apart from one another and extend through thesidewall 36. Theaperture 38 is preferably upstream of theaperture 40 or located between theaperture 40 and theinlet end 18 and is preferably a circular aperture. Theaperture 40 is preferably a triangular shaped aperture, as best seen in FIG. 5. - In another embodiment shown in FIG. 6, the
aperture 38 is provided by a plurality ofapertures 38′ and theaperture 40 is provided by a plurality ofapertures 40′. Eachaperture 38′ is preferably in alignment with eachother aperture 38′ and eachaperture 40′ is preferably aligned with eachother aperture 40′ around the periphery of thesidewall 36. - With additional reference to FIGS. 7-9, the
control member 28 includes acylindrical member 42 having anopen end 44 opposite aclosed end 46. Theclosed end 46 is preferably provided as by acircular end wall 48 enclosing the end of thecylindrical member 42. Theend wall 48 includes anaperture 50 centrally located and sized to receive the fitting 24 in a snap-fit relationship to maintain thecontrol member 28 and theflow member 16 closely adjacent one another. The diameter of thecylindrical member 42 is greater than that of thecylindrical member 30 to enable thecylindrical member 42 to receive thecylindrical member 30, preferably sized to provide anannular area 52 there between (FIGS. 3 and 8) having a width sufficient to enable the flow of warm, humidified oxygen from thecylindrical member 30 through the 38 and 40.apertures - As shown in FIGS. 8 and 9, the
control member 28 preferably includes 54 and 56 which extend fromprojections interior sidewall 58 of thecylindrical member 42 and rotatably engage opposite sides of the exterior of thecylindrical member 30. Theprojection 56 is opposite theprojection 54 so that a portion of thecylindrical member 30 is captured there between. The rotation of thecylinders 30 and 43 is preferably limited as by 60 and 62 located on the exterior of thestops cylindrical member 30 for engaging the outside edges of theprojection 54 or theprojection 56, as may be preferred. The stops 60 and 62 are preferably located such that contact with thestop 60 defines the position of theprojection 54 when it fully blocks or sealingly covers theaperture 40 against flow there through and contact with thestop 62 defines the position of theprojection 54 when it fully clears or opens theaperture 40 for flow there through. - As best seen in FIGS. 10-12, the
cylindrical member 42 and thecylindrical member 30 are rotatable relative to one another so that theprojection 54 may be positioned to be clear of theaperture 40, partially block theaperture 40 or completely block theaperture 40. In this regard, theapertures 38 and 40 (and theapertures 38′ and 40′) function to enable the inlet flow of humidified oxygen, represented by the arrow 66 (FIG. 3) to be altered to provide a desired outlet flow of humidified oxygen, represented by thearrow 68, to the patient. - For example, standard equipment available for warming and humidifying oxygen is generally not suitable for use with pediatric patients, particularly neonatal patients, who require treatment rates of less than about 2 liters per minute, sometime only slightly above zero liters per minute. The
system 10 is suitable for use with standard humidification equipment, such as the ConchaTherm IV described above, and is adjustable to control humidified oxygen available at a flow of from about 3 to about 15 liters per minute in order to provide delivery of humidified oxygen at a flow rate of from about 0 liters per minute to about 2 liters per minute. It will be understood, however, that the invention may be configured to yield various desired flow rates from a given flow source. - For example, as described herein the
aperture 38 is sized to reduce the flow rate in thecylindrical member 30 from an input flow rate from the humidifier of about 8 liters per minute to a maximum flow rate in thecannula 14 of about 2 liters per minute or less. In this case, theaperture 38 provides a passage sized to leak a flow rate of about 6 liters per minute there through and into theannular area 52 and out of theopen end 44 to the surrounding atmosphere, as represented by the arrows 70. In this regard, it will further be appreciated that thecylindrical member 42 also serves to expand, deflect and muffle the flow represented by the arrows 70 to minimize noise and directional air flow which might disturb the patient. - The
aperture 40 and theprojection 54 cooperate to enable theflow rate 68 to be maintained at about 2 liters per minute, adjusted to about 0 liters per minute or reduced to a desired flow rate within this range. When theaperture 40 is fully blocked by theprojection 54 as shown in FIG. 10, theflow rate 68 will be about 2 liters per minute, as flow will not be conducted from theconduit 30 through theaperture 40. When theaperture 40 is partially blocked by theprojection 54, as shown in FIG. 11 with aportion 72 of thecylindrical member 42 cut away, a flow indicated byarrows 74 travels from theconduit 30 there through in the manner of the flow 70, reducing the flow indicated byarrow 68 delivered to the patient to a rate of less than about 2 liters per minute and greater than about 0 liters per minute. The degree of blockage ofaperture 40 can be adjusted to provide any desired flow rate within this range. When theprojection 54 is fully clear of theaperture 40, as shown in FIG. 12, theflow 74 will be about 2 liters per minute such that theflow 68 will be about 0 liters per minute. - A pressure gauge or meter may be connected in line with the
tubing 68 and/or the system may be calibrated prior to use to facilitate delivery of desired oxygen flow rates to the patient. For example, to calibrate the system, a flow meter may be connected in place of thecannula 14 and the dimension of theaperture 40 adjusted as previously described. The rotational position of the flow control member may be recorded against theflow rate 68 measured by a flow meter. In this regard, indicia such as symbols designating open and closed and gradations there between (e.g., ¼, ½, ¾, etc.) may be provided around the circumference of the control member and a corresponding mark or indicia provided on theflow member 16 to indicate the relative dimension of the aperture in terms of blockage by theprojection 54 or other indicia corresponding to the flow rate. - For the purpose of an example, the
system 10 is preferably dimensioned as set forth in Table 1 for use in delivering a flow rate of from about 0 to about 2 liters per minute when used with an oxygen humidifier capable of providing warm, humidified oxygen at an output of about 6 liters per minute.TABLE 1 Dimension Distance (inches/cm) A (FIG. 5) 0.001 B (FIG. 5) 0.015 C (FIG. 5) 0.033 D (FIG. 5) 0.055 E (FIG. 5) 105° (0.878 inch dia.) F (FIG. 4) 0.870 inch dia. G (FIG. 4) 1.50 H (FIG. 8) 2.00 I (FIG. 9) 0.878 inch dia J (FIG. 9) 0.166 K (FIG. 9) 2.00 L (FIG. 3) 1.06 M (FIG. 4) 0.80 Aperture 3 8 0.040 dia. - Turning now to FIGS. 13-19, there is shown another embodiment of a
system 100 for controlling the flow rate of fluid, such as a gas-liquid mixture, from a source of fluid, such as a source of warm, humidified oxygen for delivery to a patient as by a nasal cannula. - The
system 100 includesflow member 102 having aninlet end 104 placeable in flow communication with the source of warm, humidified oxygen and anopposite outlet end 106 in flow communication with a fitting 108 and placeable in flow communication with a cannula. Acontrol member 110 cooperates with theflow member 102 for adjustably controlling the flow of humidified oxygen out of the fitting 108. - The
flow member 102 is preferably provided by aconduit 112, an open end of which provides theinlet end 104. The opposite end of theconduit 112 is closed, as byend wall 114. The fitting 108 extends through theend wall 114 to provide a flow path for the warm, humidified oxygen.Cylindrical sidewall 118 of theconduit 112 is substantially solid with the exception of at least oneaperture 120 and at least oneaperture 122 which are spaced apart from one another and extend through thesidewall 118. Theaperture 120 is preferably upstream of theaperture 122 and is preferably a circular aperture. Theaperture 122 is preferably a circular aperture. Anadditional fitting 124 optionally extends from the fitting 108 for connection with a flow meter for measuring the flow rate of humidified oxygen being delivered to the patient. The exterior of theend wall 114 is preferably flanged to provide a snap-fit relationship with thecontrol member 110 which permits relative rotation of thecontrol member 110 and theflow member 102. - With reference to FIGS. 17-19, the
control member 110 includes acap member 126 including anaperture 128 centrally located and sized to receive the fitting 108 or the exterior of theend wall 114. The end wall thickness of the cap member 126 (FIG. 19) is sized to provide a snap-fit relationship with the flanged exterior of theend wall 114 of theflow member 102 to maintain thecontrol member 110 and theflow member 102 adjacent one another. The circumference of thecap member 126 is preferably textured, such asknurls 131, to facilitate grasping thereof. - The
cap member 110 includes 132 and 134 which extend from the interior circumference of theprojections cap member 110 and rotatably engage opposite sides of the exterior of theconduit 102. Theprojection 132 is opposite theprojection 134 so that a portion of the conduit is captured there between. The rotation of the cap member relative to the conduit is preferably limited by as by 136 and 138 located on the exterior of thestops conduit 102 for engaging the outside edges of theprojection 132. The 136 and 138 are preferably located such that contact with thestops stop 132 defines the position of theprojection 132 when it fully blocks theaperture 122 and contact with thestop 138 defines the position of theprojection 132 when it fully clears theaperture 122. - A shroud 140 (FIGS. 13 and 14) is preferably provided to surround the
conduit 102 to provide anannular area 142 there between sufficient to enable the flow of humidified oxygen from theflow member 102 through the 120 and 122. Theapertures shroud 140 is preferably of two-piece construction and including a pair of 144 and 146 which press fit together. A plurality ofhalf cylinders elongate baffle members 148 preferably extend between the interior of theshroud 140 and the exterior of theconduit 112 in theannular area 142 there between and are located so as to contact one or more of theapertures 120, as may be desired. Thebaffle members 148 are preferably co-formed with the 144 and 146. Thehalf cylinders baffle members 148 function to selectively cover one or more of theapertures 120 and to disrupt and diffuse flow exiting the 120 and 122. Theundercovered apertures shroud member 140 abuts thecap member 110 but is preferably not connected thereto. - The
cap member 110 and theflow member 102 may be rotated relative to one another to selectively position theprojection 132 relative to theaperture 122 in the manner previously described forprojection 54 andaperture 40 ofsystem 10 of FIGS. 1-12. - Turning now to FIGS. 20-22, there is shown another embodiment of a
system 200 for controlling the flow rate of fluid, such as a gas-liquid mixture, from a source of fluid, such as a source of humidified oxygen for delivery to a patient as by a nasal cannula. - The
system 200 includes aflow member 202 having aninlet end 204 placeable in flow communication with the source of humidified oxygen opposite anoutlet end 206 in flow communication with a fitting 208 and placeable in flow communication with a cannula for delivery of the humidified oxygen to a patient. Acontrol member 210 cooperates with theflow member 202 for adjustably controlling the flow of humidified oxygen out of the fitting 208. - The
flow member 202 is preferably provided by aconduit 212, one open end of which provides theinlet end 204. The opposite end of theconduit 212 is closed, as byend wall 214. The fitting 208 extends through theend wall 214 to provide a flow path for the oxygen. The cylindrical sidewall of theconduit 212 is substantially solid with the exception of at least oneaperture 218 and at least oneaperture 220 which are spaced apart from one another and extend through the sidewall of theconduit 212. Theaperture 218 is preferably upstream of theaperture 220 betweenaperture 220 andinlet end 204 and is preferably a circular aperture. Theaperture 220 is preferably a triangular shaped aperture. - The
control member 210 is preferably provided by asemi-circular member 222 having a width that is preferably at least as great as the largest width dimension of theaperture 220 and having a radius corresponding to the inner radius of theconduit 212 so that an outwardly facingsurface 224 of thecontrol member 210 will bear againstinterior sidewall 226 of theconduit 212. - As shown in FIG. 22, a pair of generally L-shaped
channels 228 are preferably co-formed with theconduit 212 and extend circumferentially around theinterior sidewall 226 of theconduit 212 for slidably receiving thesemi-circular member 222. Astop 230 preferably extends from thesurface 224 of themember 222 to engage the length extremes or edges of theaperture 220 and limit travel of themember 222. As will be appreciated, themember 222 may be slidably positioned to vary the flow rate of humidified oxygen through theaperture 220. That is, thestop 230 may be positioned at position A to substantially close theaperture 220 and provide a flow through ihe fitting 208 to the patient of about 2 liters per minute, at position B to substantially open theaperture 220 and provide a flow through the fitting 208 of about 0 liters per minute and at points there between, such as points C or D, to provide flow rates within the range of about 0 to about 2 liters per minute as may be desired. A gasket material, such as rubber strips 232 may be positioned between themember 222 and thesidewall 226 between thechannels 228 to minimize leakage when themember 222 is positioned to seal theaperture 220 or a portion thereof. - FIGS. 23-29 show another embodiment of a
system 300 for controlling the flow rate of humidified oxygen to patients including pediatric or infant patients. Thesystem 300 includes aflow member 302 and acontrol member 304. - The
flow member 302 is preferably provided by aconduit 306 having anopen inlet end 308 placeable in flow communication with a source of warm, humidified oxygen. The opposite end of the of theconduit 306 is closed as byend wall 310. A fitting 312 connectable to a cannula and associated tubing extends through theend wall 310 to provide a flow path for the warm, humidified oxygen. To facilitate rotation of theconduit 306 relative to thecontrol member 304 in the assembledsystem 300, a pair of 314 and 316 project from the fitting 312 adjacent the end wall 3 10 for grasping by a user.wings -
Cylindrical sidewall 318 of theconduit 306 is substantially solid with the exception of 320 and 322 which are spaced apart from one another and extend through theapertures sidewall 318. Theaperture 320 is upstream of theaperture 322 and is preferably a single circular aperture. Theaperture 322 preferably includes alateral slit portion 324 parallel to the length of theconduit 306 and a v-shapedslit 326 extending generally perpendicular to theslit portion 324 along the circumference of theconduit 306. - The
control member 304 is configured to selectively engaging portions of theaperture 322 for controlling the area of theaperture 322 available to bleed off oxygen traveling through theconduit 306. In this connection, aprojection 328 is preferably defined on the surface of theconduit 306 for selectively engagingnotches 330 located on an interior surface of thecontrol member 304 for facilitating incremental relative movement of thecontrol member 304 and theconduit 306. To enable a snap-fit relationship between theconduit 306 and thecontrol member 304, theend wall 310 of theconduit 306 preferably includes aflange 332 for engagingfingers 334 located adjacent anaperture 336 defined throughend wall 338 of thecontrol member 304 for passage of theend wall 310, the 314 and 316 and the fitting 312.wings 340 and 342 are preferably provided on the exterior of theIndicia end wall 338 for aligning with thewing 314 when the aperture is fully opened and fully closed, respectively. Likewise, the exterior surface of sidewall 343 of thecontrol member 304 preferably includesknurls 344 for facilitating grasping by the user during adjustment of thesystem 300. - With reference to FIGS. 28 and 29, the control member includes interior
350 and 352 spaced apart by an open area orcylindrical sidewalls slot 354. As will be appreciated with reference to FIGS. 30a, 30 b and 30 c, thecontrol member 304 and theconduit 306 may be moved relative to one another for selectively engaging portions of theaperture 322 for controlling the area of theaperture 322 available to bleed off oxygen traveling through theconduit 306. -
356, 357 and 358 project between the exterior of theFingers sidewall 350, the interior of theend wall 338 and the interior of theconduit 306 for strength. Likewise, 359, 360 and 361 project between the exterior of thefingers sidewall 352, the interior of thesidewall 338 and the interior of theconduit 306. The 357 and 358 are preferably of a lesser width than that of thefingers slot 354 to enable escaping oxygen to expand relatively quickly and thereby reduce its velocity to reduce noise associated with the oxygen that is being bled off through theaperture 322. - For the purpose of an example, the
conduit 306 may be dimensioned similar to that of the conduit orcylindrical member 30. For use with a source of warm, humid oxygen having an output of about 8 liters/minute, theaperture 320 preferably has a diameter of about 0.04 inches, so that it may leak or bleed a flow rate of about 6 liters per minute there through. The lateral slit 324 preferably has a length of about 0.33 inches and a length of about 0.52 inches. The v-shapedslit 326 preferably extends about 105° around the circumference of theconduit 306 and tapers in width from about 0.55 inches adjacent theslit 324 to about 0.01 inches at its tip. Theslot 354 of thecover member 304 preferably tapers outwardly over the thickness of the sidewall 350 (about 0.55 inches, for example), withslot 354 preferably having an initial width of about 0.3 inches and a terminal width of about 0.5 inches. - FIGS. 31-36 show another embodiment of a
system 400 for controlling the flow rate of humidified oxygen to patients including pediatric or infant patients. Thesystem 400 includes aflow member 402 and acontrol member 404. - The
flow member 402 is preferably provided by aconduit 406 having anopen inlet end 408 placeable in flow communication with a source of warm, humidified oxygen. The opposite end of the of theconduit 406 is closed as byend wall 410. A fitting 412 connectable to a cannula and associated tubing extends through theend wall 410 to provide a flow path for the warm, humidified oxygen. To facilitate rotation of theconduit 406 relative to thecontrol member 404 in the assembledsystem 400, a pair of 414 and 416 project from the fitting 412 adjacent thewings end wall 410 for grasping by a user. -
Cylindrical sidewall 418 of theconduit 406 is substantially solid with the exception of 420 and 422 which are spaced apart from one another and extend through theapertures sidewall 418. Theaperture 420 is upstream of theaperture 422 and is preferably a single circular aperture. Theaperture 422 is preferably alateral slit 424 having a length axis parallel to the length of theconduit 406. - The
control member 404 is configured to selectively engaging portions of theaperture 422 for controlling the area of theaperture 422 available to bleed off oxygen traveling through theconduit 406. In this connection, a spiraledinterior sidewall 426 is provided on thecontrol member 404. Aprojection 428 is preferably defined on the surface of theconduit 406 for selectively engaging either anotch 430 defined along an uppermost edge of thesidewall 426 or aside edge 431 of thesidewall 426. As will be appreciated, thenotch 430 and theedge 431 define the limits of travel of theprojection 428. - To enable a snap-fit relationship between the
conduit 406 and thecontrol member 404, theend wall 410 of theconduit 406 preferably includes aflange 432 for engagingfingers 434 located adjacent anaperture 436 defined throughend wall 438 of thecontrol member 404 for passage of theend wall 410, the 414 and 416 and the fitting 412.wings Indicia 440 is preferably provided on the exterior of theend wall 438 for aligning with the 414 or 416 to indicate the degree to which the aperture or slit 422 is opened or closed or the approximate flowrate of gas being delivered to the patient. Likewise, the exterior surface ofwing sidewall 443 of thecontrol member 404 preferably includesknurls 444 for facilitating grasping by the user during adjustment of thesystem 400. - An open area or
slot 450 is located betweenside edge 431 and an opposite side edge 452 of the spiraledsidewall 426. As will be appreciated with reference to FIGS. 37a, 37 b and 37 c, thecontrol member 304 and theconduit 306 may be moved relative to one another for selectively engaging portions of theaperture 322 for controlling the area of theaperture 322 available to bleed off oxygen traveling through theconduit 306. For example, theaperture 422 is totally blocked in FIG. 37a; partially blocked in FIG. 37b and totally unblocked in FIG. 37c. - Reinforcing
456 and 458 are provided to reinforce themembers 443 and 426, respectively. Thesidewalls 456 and 458 are preferably flat, having a triangular outline. One leg of each member is against to the interior of the sidewall it is reinforcing and the other leg is against the interior ofmembers end wall 438. - For the purpose of an example, the
conduit 406 may be dimensioned similar to that of theconduit 306. For use with a source of warm, humid oxygen having an output of about 8 liters/minute, theaperture 420 preferably has a diameter of about 0.04 inches, so that it may leak or bleed a flow rate of about 6 liters per minute there through. The lateral slit 424 preferably has a length of about 0.30 inches and a width of about 0.011 inches. - The spiraled
sidewall 426 preferably increases in height in a cubic function to help linearize the air flow through theslit 424 as a function of the relative position of theflow member 402 and thecontrol member 404. The height difference between the lowest and highest portions of the sidewall is preferably about 0.3 inches so that the end ranges of relative rotation of the flow member and the control member represent theslit 424 being fully blocked or fully open. The spiraledsidewall 426 preferably has a diameter of about 0.4 inches (themember 404 having an outer diameter of about 2 inches). - As will be appreciated, the invention enables warm, humidified oxygen to be delivered to patients in a manner which has not previously been possible. For example, limitations in the design of conventional equipment for providing warm, humid oxygen requires that they be operated at flow rates that are generally greater than the desired flow rate that the oxygen be delivered to the patients such as pediatric and infant patients and many elderly patients. Furthermore, to avoid problems with overheating and the like, such equipment should, practically speaking, be operated at flow rates significantly greater than its minimum possible operating flow rate.
- The invention interfaces between conventional humidification equipment and its normal operating parameters to enable warm, humidified oxygen to be delivered at the very low flow rates often required for various patients. Thus, the humidification equipment can be operated at conditions which avoid overheating and other problems, yet the patient is able to receive very low flow rates of the warm, humid oxygen. Accordingly, the invention satisfies a long felt need in the art in a convenient and efficient manner.
- The foregoing description of certain embodiments of the present invention has been provided for purposes of illustration only, and it is understood that numerous modifications or alterations may be made in and to the illustrated embodiments without departing from the spirit and scope of the invention as defined in the following claims.
Claims (26)
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/137,259 US6739338B2 (en) | 2000-04-05 | 2002-05-02 | Neo-natal oxygen delivery system |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US54365600A | 2000-04-05 | 2000-04-05 | |
| US10/137,259 US6739338B2 (en) | 2000-04-05 | 2002-05-02 | Neo-natal oxygen delivery system |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US54365600A Continuation | 2000-04-05 | 2000-04-05 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| US20020153011A1 true US20020153011A1 (en) | 2002-10-24 |
| US6739338B2 US6739338B2 (en) | 2004-05-25 |
Family
ID=24168982
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US10/137,259 Expired - Fee Related US6739338B2 (en) | 2000-04-05 | 2002-05-02 | Neo-natal oxygen delivery system |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US6739338B2 (en) |
| AU (1) | AU2001249489A1 (en) |
| WO (1) | WO2001076658A2 (en) |
Cited By (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20090301484A1 (en) * | 2006-12-13 | 2009-12-10 | Colin Dunlop | Method and apparatus for delivering a fluid to a patient |
| US20150059758A1 (en) * | 2012-03-26 | 2015-03-05 | Koninklijke Philips N.V. | Selectable exhaust port assembly |
| US20170197057A1 (en) * | 2014-06-03 | 2017-07-13 | Fisher & Paykel Healthcare Limited | Flow mixers for respiratory therapy systems |
| US10974015B2 (en) | 2012-03-15 | 2021-04-13 | Fisher & Paykel Healthcare Limited | Respiratory gas humidification system |
| US11129956B2 (en) | 2012-04-27 | 2021-09-28 | Fisher & Paykel Healthcare Limited | Usability features for respiratory humidification system |
| US11351332B2 (en) | 2016-12-07 | 2022-06-07 | Fisher & Paykel Healthcare Limited | Sensing arrangements for medical devices |
| US11559653B2 (en) | 2014-02-07 | 2023-01-24 | Fisher & Paykel Healthcare Limited | Respiratory humidification system |
| US11801360B2 (en) | 2013-09-13 | 2023-10-31 | Fisher & Paykel Healthcare Limited | Connections for humidification system |
Families Citing this family (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7063086B2 (en) * | 1999-09-23 | 2006-06-20 | Fisher & Paykel Healthcare Limited | Breathing assistance apparatus |
| CA2393743C (en) * | 1999-12-10 | 2012-01-03 | Vapotherm, Inc. | Apparatus and method for respiratory tract therapy |
| US7708013B2 (en) * | 2000-12-08 | 2010-05-04 | Vapotherm, Inc. | Apparatus and method for delivering water vapor to a gas |
| GB0221045D0 (en) * | 2002-09-11 | 2002-10-23 | Micro Medical Ltd | A rotary variable orifice valve |
| US20060144401A1 (en) | 2002-09-18 | 2006-07-06 | Poul Boelt | Pressure reducing device |
| US7827981B2 (en) * | 2003-01-29 | 2010-11-09 | Vapotherm, Inc. | Method for reducing the work of breathing |
| US20060174891A1 (en) * | 2005-02-10 | 2006-08-10 | Ammann Shari R | Neonatal breathing device and method |
| CN113171525A (en) * | 2021-03-31 | 2021-07-27 | 四川省肿瘤医院 | A gas incision atomization plugging device |
Family Cites Families (11)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4451257A (en) * | 1981-10-29 | 1984-05-29 | Atchley Frank W | Surgical aspirator with poppet control valve |
| AU614731B2 (en) * | 1986-12-09 | 1991-09-12 | Maersk Indoplas Pty Limited | Oxygen dilution apparatus |
| US4919132A (en) * | 1987-08-21 | 1990-04-24 | Miser Martin G | Apparatus for supplying gas to a patient |
| US4886055A (en) | 1988-01-22 | 1989-12-12 | Hoppough John M | Nebulizer device |
| FR2645026B1 (en) | 1989-03-31 | 1997-11-21 | Boussignac Georges | RESPIRATORY ASSISTANCE DEVICE |
| US5076787A (en) * | 1991-08-16 | 1991-12-31 | Overmyer Thad J | Variable suction aspirator head with solids trap |
| FR2724564B1 (en) | 1994-09-16 | 1997-04-04 | Boussignac Georges | RESPIRATORY ASSISTANCE DEVICE |
| AU701970B2 (en) | 1994-10-25 | 1999-02-11 | Teijin Limited | An apparatus for supplying a respiratory gas to a patient |
| US5694923A (en) | 1996-08-30 | 1997-12-09 | Respironics, Inc. | Pressure control in a blower-based ventilator |
| US5878743A (en) | 1996-09-23 | 1999-03-09 | Respironics, Inc. | Pressure sensitive flow control valve |
| US5896857A (en) | 1996-12-20 | 1999-04-27 | Resmed Limited | Valve for use in a gas delivery system |
-
2001
- 2001-03-27 WO PCT/US2001/009763 patent/WO2001076658A2/en not_active Ceased
- 2001-03-27 AU AU2001249489A patent/AU2001249489A1/en not_active Abandoned
-
2002
- 2002-05-02 US US10/137,259 patent/US6739338B2/en not_active Expired - Fee Related
Cited By (15)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20090301484A1 (en) * | 2006-12-13 | 2009-12-10 | Colin Dunlop | Method and apparatus for delivering a fluid to a patient |
| US12350436B2 (en) | 2012-03-15 | 2025-07-08 | Fisher & Paykel Healthcare Limited | Respiratory gas humidification system |
| US10974015B2 (en) | 2012-03-15 | 2021-04-13 | Fisher & Paykel Healthcare Limited | Respiratory gas humidification system |
| US20150059758A1 (en) * | 2012-03-26 | 2015-03-05 | Koninklijke Philips N.V. | Selectable exhaust port assembly |
| US11129956B2 (en) | 2012-04-27 | 2021-09-28 | Fisher & Paykel Healthcare Limited | Usability features for respiratory humidification system |
| US11878093B2 (en) | 2012-04-27 | 2024-01-23 | Fisher & Paykel Healthcare Limited | Usability features for respiratory humidification system |
| US11801360B2 (en) | 2013-09-13 | 2023-10-31 | Fisher & Paykel Healthcare Limited | Connections for humidification system |
| US12515008B2 (en) | 2013-09-13 | 2026-01-06 | Fisher & Paykel Healthcare Limited | Connections for humidification system |
| US11559653B2 (en) | 2014-02-07 | 2023-01-24 | Fisher & Paykel Healthcare Limited | Respiratory humidification system |
| US12397127B2 (en) | 2014-02-07 | 2025-08-26 | Fisher & Paykel Healthcare Limited | Respiratory humidification system |
| US11712536B2 (en) | 2014-06-03 | 2023-08-01 | Fisher & Paykel Healthcare Limited | Flow mixers for respiratory therapy systems |
| US11324911B2 (en) * | 2014-06-03 | 2022-05-10 | Fisher & Paykel Healthcare Limited | Flow mixers for respiratory therapy systems |
| US20170197057A1 (en) * | 2014-06-03 | 2017-07-13 | Fisher & Paykel Healthcare Limited | Flow mixers for respiratory therapy systems |
| US11351332B2 (en) | 2016-12-07 | 2022-06-07 | Fisher & Paykel Healthcare Limited | Sensing arrangements for medical devices |
| US12508391B2 (en) | 2016-12-07 | 2025-12-30 | Fisher & Paykel Healthcare Limited | Sensing arrangements for medical devices |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2001076658A3 (en) | 2002-07-25 |
| US6739338B2 (en) | 2004-05-25 |
| AU2001249489A1 (en) | 2001-10-23 |
| WO2001076658A2 (en) | 2001-10-18 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US6739338B2 (en) | Neo-natal oxygen delivery system | |
| JP6880118B2 (en) | Respiratory assist device | |
| US20230347095A1 (en) | Flow mixers for respiratory therapy systems | |
| US4919132A (en) | Apparatus for supplying gas to a patient | |
| US4886055A (en) | Nebulizer device | |
| US7617824B2 (en) | Ventilator adaptable for use with either a dual-limb circuit or a single-limb circuit | |
| US9211398B2 (en) | Connector system for an apparatus that delivers breathable gas to a patient | |
| EP0992259B1 (en) | A connector, in particular for use in a breathing circuit | |
| TWI895255B (en) | A connector, a connection assembly and a combination of components for use in a respiratory system | |
| US20080041393A1 (en) | Nasal Cannula For The Delivery of Humidified Oxygen | |
| US3581742A (en) | Intermittent positive pressure breathing device | |
| WO2007102866A2 (en) | Ventilator adaptable for use with either a dual-limb or a single-limb circuit | |
| CN222899927U (en) | Nasal interface | |
| US4244363A (en) | Disposable anesthesia circuit | |
| CN220193730U (en) | Adapter device | |
| US6431170B1 (en) | Fluid mixing apparatus, method and system using same | |
| US20250041550A1 (en) | Connection piece for a medical ventilator assembly, a ventilator system, and a method of manufacturing a connection piece | |
| CN221845733U (en) | Tracheotomy cannula with humidifying function | |
| EP4262950A1 (en) | A respiratory connector assembly and respiratory support system |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| REMI | Maintenance fee reminder mailed | ||
| AS | Assignment |
Owner name: REGIONS BANK, TENNESSEE Free format text: AMENDED AND RESTATED SECURITY AGREEMENT;ASSIGNOR:DEROYAL INDUSTRIES, INC.;REEL/FRAME:020325/0001 Effective date: 20071227 |
|
| LAPS | Lapse for failure to pay maintenance fees | ||
| STCH | Information on status: patent discontinuation |
Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362 |
|
| FP | Lapsed due to failure to pay maintenance fee |
Effective date: 20080525 |
|
| AS | Assignment |
Owner name: REGIONS BANK, TENNESSEE Free format text: SECURITY INTEREST;ASSIGNOR:DEROYAL INDUSTRIES, INC.;REEL/FRAME:062079/0779 Effective date: 20191229 |